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首页> 外文期刊>Computational & theoretical chemistry >Explicit solvation modulates intra- and inter-molecular interactions within DNA: Electronic aspects revealed by the ab initio fragment molecular orbital (FMO) method
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Explicit solvation modulates intra- and inter-molecular interactions within DNA: Electronic aspects revealed by the ab initio fragment molecular orbital (FMO) method

机译:明确的溶剂化调节DNA内分子间和分子间的相互作用:从头算片段分子轨道(FMO)方法揭示的电子方面

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摘要

The change in the electronic structure of a DNA duplex d(CGCGAATTCGCG)(2) upon solvation was investigated by the ab initio fragment molecular orbital (FMO) method. The crystal structure of the duplex was immersed in a solvent box containing explicit water and Na+ ions, and the resultant solvated DNA was relaxed and annealed by the classical molecular dynamics method. From the annealed structure a series of solvated DNA configurations were constructed with varying solvent shell thicknesses (0-12 angstrom). Each configuration was subjected to FMO calculation at the MP2/6-31G* level. Partial charge, internal energies, interaction energies between the bases and phosphate backbones, and fragment molecular orbitals within DNA were calculated and expressed as functions of the solvent thickness. Most of these physical properties within DNA converged at a shell thickness of 8 angstrom, indicating the dominant effect of the first and second solvation layers. Ca. -7e charge, i.e. -0.6e per base pair, was transferred from DNA to the solvent. Upon solvation the Watson-Crick H-bonds became stabilized but the stacking interactions were destabilized. Based on the pair interaction energy decomposition analysis, these stability changes were attributed to modulation of the electrostatic interaction elicited by the rearrangement of the charge distribution due to the charge transfer to the solvent. Thus, this study revealed significant modulation of the electronic structure of the DNA upon solvation and its impact on molecular interactions, which can be described only through quantum-chemical calculations. (C) 2014 Elsevier B.V. All rights reserved.
机译:通过从头算片段分子轨道(FMO)方法研究了溶剂化后的DNA双链体d(CGCGAATTCGCG)(2)电子结构的变化。将双链体的晶体结构浸入含有明显水和Na +离子的溶剂箱中,然后通过经典的分子动力学方法将所得的溶剂化DNA松弛并退火。从退火的结构中,构建了一系列具有变化的溶剂壳厚度(0-12埃)的溶剂化DNA构型。每种配置都经过MP2 / 6-31G *级别的FMO计算。计算部分电荷,内部能量,碱和磷酸盐骨架之间的相互作用能以及DNA内的片段分子轨道,并将其表示为溶剂厚度的函数。 DNA内的大多数这些物理特性在8埃的壳厚度处会聚,表明第一和第二溶剂化层的主要作用。钙-7e电荷,即每碱基对-0.6e,从DNA转移到溶剂中。溶剂化后,Watson-Crick H键稳定了,但堆积相互作用却不稳定。基于对相互作用能分解分析,这些稳定性变化归因于由于电荷转移到溶剂中而导致的电荷分布重新排列而引起的静电相互作用的调节。因此,这项研究揭示了溶剂化后DNA电子结构的显着调节及其对分子相互作用的影响,这只能通过量子化学计算来描述。 (C)2014 Elsevier B.V.保留所有权利。

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